Simulating the Yield Impacts of Organ-Level Quantitative Trait Loci Associated With Drought Response in Maize: A "Gene-to-Phenotype" Modeling Approach

被引:163
作者
Chenu, Karine [1 ,2 ]
Chapman, Scott C. [3 ]
Tardieu, Francois [2 ]
McLean, Greg [1 ]
Welcker, Claude [2 ]
Hammer, Graeme L. [4 ]
机构
[1] Queensland Primary Ind & Fisheries, Dept Employment Econ Dev & Innovat, APSRU, Toowoomba, Qld 4350, Australia
[2] INRA, Lab Ecophysiol Plantes Stress Environm, UMR 759, F-34060 Montpellier, France
[3] CSIRO Plant Ind, St Lucia, Qld 4067, Australia
[4] Univ Queensland, Sch Land Crop & Food Sci, APSRU, Brisbane, Qld 4072, Australia
关键词
ANTHESIS-SILKING INTERVAL; RECOMBINANT INBRED LINES; KERNEL NUMBER DETERMINATION; MARKER-ASSISTED SELECTION; LOWLAND TROPICAL MAIZE; LEAF GROWTH-RATE; ENVIRONMENT INTERACTIONS; WATER-DEFICIT; ARABIDOPSIS-THALIANA; STRESS ENVIRONMENTS;
D O I
10.1534/genetics.109.105429
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Under drought, substantial genotype-environment (G x E) interactions impede breeding progress for yield. Identifying genetic Controls associated with yield response is confounded by poor genetic correlations across testing environments. Part of this problem is related to our inability to account for the interplay of genetic controls, physiological traits, and environmental conditions throughout the crop cycle. We propose a modeling approach to bridge this "gene-to-phenotype" gap. For maize under drought, we simulated the impact of quantitative trait loci (QTL) controlling two key processes (leaf and silk elongation) that influence crop growth, water use, and grain yield. Substantial G x E interaction for yield was simulated for hypothetical recombinant inbred lines (RILs) across different seasonal patterns of drought. QTL that accelerated leaf elongation caused art increase in crop leaf area and yield in well-watered or preflowering water deficit conditions, but a reduction in yield under terminal stresses (as such "leafy" genotypes prematurely exhausted the water supply). The QTL impact on yield was substantially enhanced by including pleiotropic effects of these QTL on silk elongation and on consequent grain set. The simulations obtained illustrated the difficulty of interpreting the genetic control of yield for genotypes influenced only by the additive effects of QTL associated with leaf and silk growth. The results highlight the potential of integrative modeling for gene-to-phenotype prediction and for exploiting G x E interactions for complex traits such as drought tolerance.
引用
收藏
页码:1507 / 1523
页数:17
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